Exploring the diversity of the CO2-concentrating mechanism (CCM) in different C4 subtypes
Baccolini, C.; Ishihara, H.; Feil, R.; Perez de Souza, L.; Alseekh, S.; Fernie, A. R.; Stitt, M.; Lunn, J. E.; Arrivault, S.
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C4 plants have traditionally been classified into NADP-malic enzyme (NADP-ME), NAD-malic enzyme (NAD-ME) and PEP carboxykinase (PEPCK) subtypes based on the predominant C4-acid decarboxylating enzyme. To investigate the relative contributions of malate and aspartate to C4-pathway fluxes in each subtype, we performed 13CO2 pulse and pulse-chase labelling experiments on four C4 grass species: Zea mays and Setaria viridis (NADP-ME), Panicum miliaceum (NAD-ME) and Megathyrsus maximus (PEPCK). Only a proportion (8-50%) of the total malate pool in the leaves is photosynthetically active whereas essentially all of the aspartate pool is photosynthetically active. Estimates of metabolic fluxes indicate that approximately two thirds of the C4 pathway flux is via malate in Z. mays and the remaining third via aspartate, while in S. viridis 50% of the flux is via malate and 50% via aspartate. In P. miliaceum and M. maximus, 91% and 85% of the flux is via aspartate and the remaining 5% and 15% via malate, respectively. The results reveal greater complexity of C4 pathway fluxes than is usually represented in textbook diagrams, and demonstrate the feasibility of using non-radioactive 13CO2 in pulse-chase labelling experiments to study C4 photosynthesis and to detect C4 pathway fluxes in C3 plants engineered to perform C4 photosynthesis. Highlight StatementPhotosynthetic fluxes in C4 species are more complex than most textbook models show, with malate and aspartate both carrying C4 cycle fluxes in all three subtypes (NADP-ME, NAD-ME and PEPCK).
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